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How many moles of argon gas will be contained in a 0.450 L flask at STP?(show all work)0.02010.01610.02150.0237

User Varun Suresh Kumar
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1 Answer

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We will assume that the gas behaves like an ideal gas. So we can apply the ideal gas law which is described with the following equation:


\begin{gathered} PV=nRT \\ n=(PV)/(RT) \end{gathered}

Where,

n is the number of moles of the gas

P is the pressure of the gas. At STP conditions the pressure is 1atm.

T is the temperature of the gas. At STP conditions the temperature is 273.15K

V is the volume of the gas, 0.450L

R is a contant, 0.08206atm.L/mol.K

Now, we replace the known data:


\begin{gathered} n=(1atm*0.450L)/(0.08206(atm.L)/(mol.K)*273.15K) \\ n=(1*0.450)/(0.08206*273.15)mol \\ n=0.0201mol \end{gathered}

Answer: There are contained 0.0201 mol of argon gas

User Saeedgnu
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